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Give a method that sums all the numbers in a list. The method should be able to skip elements that are not numbers. So, sum([1,2,3]) should be 6 but sum(['A', 1, 'B', 2, 3]) should also be 6. How can I accomplish this?

What I have already tried so far:

def foo(list):
    dict = "ABCDEFGHIJKLMN"
    n = 0
    for i in range(0, len(list) - 1):
        if list[i].str in dict:
            ""
        else:    
            n= n + list[i]
    return n

print foo([1, 2, 3, 4, 5, 6, "A", "B"])
share|improve this question
    
Replace list[i].str with str(list[i]). – Delgan Jan 11 at 18:13
1  
Sounds like homework to me. – Jonas Gröger Jan 11 at 18:13
    
@JonasGröger He posted the code he wrote I guess. – Delgan Jan 11 at 18:14
    
@Delgan I didn't see a error message or a unexpected result. He just pasted the code there. – Jonas Gröger Jan 11 at 18:15
7  
Notes: avoid variable names like dict and list since they are the names of built-in functions. Your variable named dict is actually a string, not a dictionary. Perhaps a name like letters would be clearer. – dsh Jan 11 at 18:16

You can do this with a simple one liner:

l1 = [1, 2, 3, 'A']

sum(filter(lambda i: isinstance(i, int), l1))
# prints 6

Or, if you need it inside a function:

def foo(l1):
    return sum(filter(lambda i: isinstance(i, int), l1))

Additionally, as noted in the comments, don't use names like dict and list for your variables; *they will shadow they build-in names for the dictionary (dict) and (list) types. You'll then need to explicitly del dict, list in order to use them as intended.


But, let me explain. What filter does is here is:

a) It takes a function as its first argument:

# this function will return True if i is an int
# and false otherwise
lambda i: isinstance(i, int)

and then takes every element inside the list l1 (second argument) and evaluates whether it is True or False based on the function.

b) Then, filter will essentially filter out any objects inside list l1 that are not instances of int (i.e the function returns False for them). As a result, for a list like [1, 2, 3, 'A'] filter is going to return [1, 2, 3] which will then be summed up by sum().

Some Examples:

foo([1, 2, 3, 'A'])
# 6

foo([1, 2, 3])
# 6

foo([1, 2, 3, 'HELLO', 'WORLD'])
# 6

Slight caveat:

As is, this doesn't sum up float values, it drops them (and any other numeric types for that case). If you need that too, simply add the float type in the lambda function as so:

lambda i: isinstance(i, (int, float))

Now, your function sums floats too:

foo([1, 2, 3, 3.1,  'HELLO', 'WORLD'])
# 9.1

Add any other types as necessary in the lambda function to catch the cases that you need.


A catch all case:

As noted by @Copperfield you can check for objects that are instances of any number by utilizing the numbers.Number abstract base class in the numbers module. This acts as a catch-all case for numeric values:

import numbers # must import
sum(filter(lambda i: isinstance(i, numbers.Number), l1))

Simpler and a bit faster, too:

Additionally, as noted by @ShadowRanger, and since lambda might not be the most comfortable construct for new users, one could simply use a generator expression (which is also faster) with sum to get the same exact result:

sum(val for val in l1 if isinstance(val, numbers.Number))
share|improve this answer
2  
to include every numeric type without mention each one, you can use the corresponding ABC, for example isinstance(item, numbers.Number) – Copperfield Jan 11 at 18:42
3  
If you'd need a lambda to use map/filter, you may as well just use a generator expression (or list comp); you gain nothing in terms of either brevity or speed as soon as you resort to lambdas with map/filter. – ShadowRanger Jan 11 at 23:37
    
The speed loss is neglidgible in this context but exists nontheless, I will edit my asnwer to include the generator based sum since it is also most explicit. The biggest loss here is probably due to lambda being an odd construct, and confusing people, especially new comers. – Jim Jan 12 at 0:05

The Pythonic way is to do a try/except. While you could do this in a one liner, I prefer to break things out a bit to see exactly what is happening.

val=0
for item in list:
    try:
        val+=int(item)
    except ValueError:
        pass

If you want to include floating points, simply change the int to a float. Floating points are anything with a decimal, among others.

share|improve this answer
4  
Not sure why you're being voted down. If this was anything more complicated than "Add the numbers" then this is exactly how to do it. The cheeky one-liner isn't better. – Adam Smith Jan 11 at 18:23
1  
@AdamSmith: Sadly that is the case. Too many Python programmers like to try to cram as much as possible into a single line of code... – PearsonArtPhoto Jan 11 at 18:31
2  
While I +1'd and in general do agree (as Adam said, in more complicated cases), in this case a try-catch is overkill. Additionally, you are wraping an item in an int call when it really shouldn't be necessary and, in order to generalize to encompass all Numbers, you'd probably do an if isinstance and drop the try altogether. filter is such a wonderful little function for exactly these things, can't see why you hatin' on it. – Jim Jan 11 at 22:21
    
Downside to this approach: If the distinction between values to be kept and values to be dropped is based on type (str dropped, int kept), this code will fail if the input is (1, 2, '3', '4') by returning 10 instead of 3; int will happily coerce numeric str to int. – ShadowRanger Jan 11 at 23:41
2  
The exercise said add all the numbers, not integers. So why not just change "val+=int(item)" to "val+=item"? That seems to me to fix the downside that's been mentioned - has the added virtue of then being exactly the solution I was about to post before seeing this, heh. – David C. Ullrich Jan 12 at 0:34
sum([x for x in list if isinstance(x, (int, long, float))])
share|improve this answer
    
Best answer. Maybe using filter() would be more explicit. – felipsmartins Jan 11 at 18:24
2  
filter is really only "better" when it gains you something on speed or brevity (and it only gains you speed when you can pass it a built-in function implemented in C on CPython). For something like this, a generator expression is best (same as current answer, but without the brackets that make a list comprehension, which means no intermediate lists being created and thrown away); it's no more or less explicit, and likely slightly faster. – ShadowRanger Jan 11 at 23:35

use filter and isinstance like this

>>> test = [1,2,3,4,5,6,"A","B"]
>>> sum(filter(lambda x:isinstance(x,int),test))
21
>>> 
share|improve this answer
def foo(list):
dict= "ABCDEFGHIJKLMN"
n=0
for i in range(0,len(list)-1):
    if str(list[i]) in dict:
        ""
    else:    
        n= n+list[i]
return n
print foo([1,2,3,4,5,6,"A","B"])
share|improve this answer
    
Why have you added your wrong code as an answer? You can delete it. – Parth Jan 11 at 18:36
    
it is working now by str(list[i]) – user3419487 Jan 11 at 18:48
    
But it won't work if you have strings apart from A-N. E.g. Try "Z" – Parth Jan 11 at 18:55
1  
the way to say that you do nothing in a block of code is by using pass. And in this case you can also use if str(list[i]) not in dict or if not (str(list[i]) in dict) and do the sum – Copperfield Jan 11 at 19:06
    
@Copperfield: Actually, even if you put the not first, you still don't need additional parens; not x in y is already equivalent to (if slightly less readable to my mind) x not in y, no need for parens. – ShadowRanger Jan 11 at 23:39
def filtersum(L):
    if not L: return 0
    if not isinstance(L[0], int): return filtersum(L[1:])
    return L[0] + filtersum(L[1:])

Output:

In [28]: filtersum([1,2,3])
Out[28]: 6

In [29]: filtersum([1,'A', 2,3])
Out[29]: 6
share|improve this answer
2  
why recursion? that is unnecessary overhead – Copperfield Jan 11 at 18:35
    
OP wants answers for an exam - I imagine a professor would be quite impressed with this response from student in an intro to programming class – inspectorG4dget Jan 11 at 18:36
1  
A code block alone does not provide a good answer. Please add explanations (why it solve the issue, where was the mistake, etc...) – Louis Barranqueiro Jan 11 at 20:27

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